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由于蓝斑交叉投射到动眼神经副核,瞳孔测量的复杂性和对称性相对于基线直径呈倒U形曲线。

Pupillometric Complexity and Symmetricity Follow Inverted-U Curves Against Baseline Diameter Due to Crossed Locus Coeruleus Projections to the Edinger-Westphal Nucleus.

作者信息

Nobukawa Sou, Shirama Aya, Takahashi Tetsuya, Takeda Toshinobu, Ohta Haruhisa, Kikuchi Mitsuru, Iwanami Akira, Kato Nobumasa, Toda Shigenobu

机构信息

Department of Computer Science, Chiba Institute of Technology, Chiba, Japan.

National Center of Neurology and Psychiatry, Department of Preventive Intervention for Psychiatric Disorders, National Institute of Mental Health, Tokyo, Japan.

出版信息

Front Physiol. 2021 Feb 11;12:614479. doi: 10.3389/fphys.2021.614479. eCollection 2021.

Abstract

In addition to photic reflex function, the temporal behavior of the pupil diameter reflects levels of arousal and attention and thus internal cognitive neural activity. Recent studies have reported that these behaviors are characterized by baseline activity, temporal complexity, and symmetricity (i.e., degree of symmetry) between the right and left pupil diameters. We hypothesized that experimental analysis to reveal relationships among these characteristics and model-based analysis focusing on the newly discovered contralateral projection from the locus coeruleus (LC) to the Edinger-Westphal nucleus (EWN) within the neural system for controlling pupil diameter could contribute to another dimension of understanding of complex pupil dynamics. In this study, we aimed to validate our hypothesis by analyzing the pupillary hippus in the healthy resting state in terms of sample entropy (SampEn), to capture complexity, and transfer entropy (TranEn), to capture symmetricity. We also constructed a neural model embedded with the new findings on neural pathways. The following results were observed: first, according to surrogate data analysis, the complexity and symmetricity of pupil diameter changes reflect a non-linear deterministic process. Second, both the complexity and the symmetricity are unimodal, peaking at intermediate pupil diameters. Third, according to simulation results, the neural network that controls pupil diameter has an inverted U-shaped profile of complexity and symmetricity vs. baseline LC activity; this tendency is enhanced by the contralateral synaptic projections from the LCs to the EWNs. Thus, we characterized the typical relationships between the baseline activity and the complexity and symmetricity of the pupillometric data in terms of SampEn and TranEn. Our evaluation method and findings may facilitate the development of estimation and diagnostic tools for exploring states of the healthy brain and psychiatric disorders based on measurements of pupil diameter.

摘要

除了光反射功能外,瞳孔直径的时间行为反映了觉醒和注意力水平,进而反映了内部认知神经活动。最近的研究报告称,这些行为的特征在于基线活动、时间复杂性以及左右瞳孔直径之间的对称性(即对称程度)。我们假设,揭示这些特征之间关系的实验分析以及基于模型的分析(聚焦于神经系统中从蓝斑(LC)到动眼神经副核(EWN)新发现的对侧投射,该神经系统用于控制瞳孔直径)可能有助于从另一个维度理解复杂的瞳孔动态。在本研究中,我们旨在通过分析健康静息状态下瞳孔的虹膜震颤来验证我们的假设,具体通过样本熵(SampEn)来捕捉复杂性,通过转移熵(TranEn)来捕捉对称性。我们还构建了一个嵌入神经通路新发现的神经模型。观察到以下结果:首先,根据替代数据分析,瞳孔直径变化的复杂性和对称性反映了一个非线性确定性过程。其次,复杂性和对称性均呈单峰分布,在中等瞳孔直径时达到峰值。第三,根据模拟结果,控制瞳孔直径的神经网络在复杂性和对称性与基线LC活动的关系上呈倒U形分布;从LC到EWN的对侧突触投射增强了这种趋势。因此,我们用SampEn和TranEn描述了基线活动与瞳孔测量数据的复杂性和对称性之间的典型关系。我们的评估方法和研究结果可能有助于开发基于瞳孔直径测量来探索健康大脑状态和精神疾病的估计和诊断工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f71c/7905168/105056837ec3/fphys-12-614479-g0001.jpg

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